An air dryer with a rotor and desiccant positioned within an interior chamber of the rotor. The desiccant is positioned within the interior chamber of the rotor between the inlet and the outlet. The desiccant is configured to adsorb at least some of the water contained within air flowing from an inlet to an outlet of the rotor. As the rotor is rotated at a regeneration speed at least some of the water adsorbed by the desiccant moves to the outer surface of the desiccant and at least some of the water is separated from the outer surface of the desiccant. The rotor directs water separated from the outer surface of the desiccant to at least one opening in the rotor. A method for drying air by sending the air through desiccant and rotating the desiccant at a regeneration speed to separate water from the desiccant.
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13. A method for drying air containing water with a rotor comprising one or more walls defining an interior chamber, wherein a plurality of openings are formed in the rotor and are each in fluid communication with the interior chamber, wherein at least one of the openings comprises an inlet, wherein an outlet is formed in the rotor and is in fluid communication with the interior chamber, wherein desiccant is positioned within the interior chamber between the inlet and the outlet, and wherein at least one of the one or more walls is sloped from at least one of the openings to the outlet, comprising:
sending the air through the inlet and through the desiccant so that the desiccant adsorbs at least some of the water; and
rotating the rotor and the desiccant at a regeneration speed sufficient to move at least some of the water to an outer surface of the desiccant and separate at least some of the water from the outer surface of the desiccant, and wherein the at least one sloped wall of the rotor directs water separated from the outer surface to at least one of the openings.
1. An air dryer comprising:
a rotor comprising one or more walls that define an interior chamber, wherein a plurality of openings are formed in the rotor and are each in fluid communication with the interior chamber, wherein at least one of the openings comprises an inlet, wherein an outlet is formed in the rotor and is in fluid communication with the interior chamber, wherein the inlet is configured to receive air containing water, and wherein at least one of the one or more walls is sloped from at least one of the openings to the outlet; and
desiccant positioned within the interior chamber between the inlet and the outlet, wherein the desiccant comprises an outer surface positioned adjacent to the rotor, wherein the desiccant is configured to adsorb at least some of the water contained within air flowing from the inlet to the outlet, wherein the desiccant is structured so that as the rotor is rotated at a regeneration speed at least some of the water moves to the outer surface and at least some of the water is separated from the outer surface, and wherein the at least one sloped wall of the rotor is structured to direct water separated from the outer surface to at least one of the openings.
20. An air dryer comprising:
a housing comprising a first inlet, a first outlet, a drain, and an inner surface;
a rotor that is at least partially positioned within the housing to form an expansion chamber between the inner surface of the housing and the rotor, wherein the expansion chamber is in fluid communication with the first inlet and the drain of the housing, wherein the rotor comprises an interior chamber, wherein a plurality of openings are formed in the rotor and are each in fluid communication with the interior chamber, wherein at least one of the openings comprises a second inlet that is in fluid communication with the expansion chamber, wherein a second outlet is formed in the rotor and is in fluid communication with the interior chamber and the first outlet of the housing, wherein the second inlet is configured to receive air containing water, wherein the drain of the housing is in fluid communication with at least one of the openings of the rotor, wherein the expansion chamber is positioned between the first inlet of the housing and the second inlet of the rotor, and wherein the expansion chamber is positioned between the drain of the housing and the second inlet of the rotor; and
desiccant positioned within the interior chamber of the rotor between the second inlet and the second outlet, wherein the desiccant comprises an outer surface positioned adjacent to the rotor, wherein the desiccant is configured to adsorb at least some of the water contained within air flowing from the second inlet to the second outlet, wherein the desiccant is structured so that as the rotor is rotated at a regeneration speed at least some of the water moves to the outer surface and at least some of the water is separated from the outer surface, and wherein the rotor is structured to direct water separated from the outer surface to at least one of the openings.
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Not applicable.
Not applicable.
1. Field of the Invention
The present invention relates to an air dryer, and more specifically to an air dryer with rotating desiccant.
2. Description of Related Art
The pneumatic braking system of a large, heavy-duty vehicle typically includes an air compressor, a governor for controlling the operating cycle of the air compressor, an air dryer and a reservoir for storing pressurized air for delivery to the brakes. The air compressor operates successively in a loading (compressing) mode and an unloading (non-compressing) mode.
When the pressure in the air reservoir falls below a predetermined minimum pressure, typically about 100 psig, the governor causes the air compressor to operate in the loading mode to compress air for storage in the reservoir. Before the air is stored in the reservoir, it passes through an air dryer that removes moisture and contaminants from the air. When the pressure in the reservoir reaches a desired level, typically about 120 psig, the governor causes the air compressor to operate in the unloading mode and a purge valve in the air dryer opens to the atmosphere.
One type of conventional air dryer includes a removable cartridge with desiccant that dries the compressed air as it flows through the cartridge during the loading mode. During the unloading mode, the governor causes the purge valve in the air dryer to open the inlet of the cartridge to exhaust to atmosphere, the air flow direction is reversed and previously dried compressed air is sent through the cartridge to regenerate the desiccant by removing moisture and contaminants from it. This type of air dryer cannot continuously dry air because the direction of air flow must be reversed in a purge cycle to regenerate the desiccant. Further, regenerating the desiccant in this type of air dryer depletes some of the stored, compressed air that could otherwise be used to operate the brakes. In addition, before air enters the cartridge to be treated by the desiccant, it must be cooled to a sufficient temperature, which is typically accomplished by routing the air through a long cooling line positioned between the air compressor and air dryer.
Another type of air dryer includes dual cartridges each including desiccant that dries compressed air. The air dryer includes an internal valve mechanism that controls air flow through the cartridges. When one cartridge dries air from the air compressor, air from the storage reservoir may be sent in reverse through the other cartridge to regenerate the desiccant. While this type of air dryer may continuously dry air, it depletes the stored, compressed air for regeneration of the desiccant like the single cartridge air dryer described above. Further, it also requires a long cooling line to cool air from the compressor before it enters the air dryer.
The present invention is directed toward an air dryer with a rotor and desiccant positioned within an interior chamber of the rotor. The rotor has an outlet and a plurality of openings at least one of which forms an inlet. The desiccant is positioned within the interior chamber of the rotor between the inlet and the outlet and has an outer surface positioned adjacent to the rotor. The desiccant is configured to adsorb at least some of the water contained within air flowing through the desiccant from the inlet to the outlet. The desiccant is structured so that as the rotor is rotated at a regeneration speed at least some of the water adsorbed by the desiccant moves to the outer surface of the desiccant and at least some of the water is separated from the outer surface of the desiccant. The rotor is structured to direct water separated from the outer surface of the desiccant to at least one of the openings in the rotor. The desiccant is preferably continuously regenerated as the rotor rotates at the regeneration speed, which allows the air dryer to operate continuously as air is supplied to it by an air compressor. Further, substantially all of the air dried by the air dryer may be stored for use in a pneumatic system, such as a vehicle braking system, without being used to regenerate the desiccant.
Preferably, the rotor is positioned inside a housing with an air inlet in fluid communication with the inlet of the rotor, an air outlet in fluid communication with the outlet of the rotor, and a drain in fluid communication with at least one of the openings of the rotor. The housing preferably includes an expansion chamber positioned between the air inlet of the housing and the rotor. In the expansion chamber, air entering the housing expands and cools to condense water contained therein before the air is dried by the desiccant. Because the air is cooled upon entering the housing, a relatively short line or hose may be used to deliver air to the air dryer from an air compressor. The rotor preferably includes a side wall in which the plurality of openings are formed. The side wall is preferably sloped from the openings to the outlet to facilitate the movement of water away from the outlet and toward the openings.
A method for drying air containing water in accordance with the present invention includes sending the air through desiccant so that the desiccant adsorbs at least some of the water. The desiccant is rotated at a regeneration speed that is sufficient to move at least some of the water to an outer surface of the desiccant and separate at least some of the water from the outer surface of the desiccant. Prior to the air being dried by the desiccant, water within the air is preferably condensed by reducing the pressure and temperature of the air within an expansion chamber.
Additional aspects of the invention, together with the advantages and novel features appurtenant thereto, will be set forth in part in the description which follows, and in part will become apparent to those skilled in the art upon examination of the following, or may be learned from the practice of the invention. The objects and advantages of the invention may be realized and attained by means of the instrumentalities and combinations particularly pointed out in the appended claims.
An air dryer in accordance with the present invention is shown generally as 10 in
Referring to
As shown in
Housing 14 has an air inlet 44 (
Referring to
As shown in
A plurality of openings 86 are formed in side wall 64 adjacent to the first end 52. Each of the openings 86 is in fluid communication with the interior chamber 84. Side wall 68 of desiccant cartridge 66 extends from the end of the openings 86 to second end 54 of rotor 16. The inner surface 70 of side wall 68 slopes from outlet 82 to openings 86 to facilitate the movement of water and contaminants away from outlet 82 and toward openings 86. The openings 86 function as both an inlet to allow air to enter the interior chamber 84 and as a drain to allow water and contaminants to exit the interior chamber 84.
Rotor 16 is supported within housing 14 by a pair of bearings 88 and 90 each positioned between the side wall 64 of rotor 16 and the side wall 24 of housing 14. The bearings 88 and 90 support the rotor 16 and permit it to rotate relative to housing 14. Annular grooves 92 and 94 are formed in an inner surface of the side wall 24 of housing 14 for retaining bearings 88 and 90, respectively. The base 56 of rotor 16 includes a ledge 96 for retaining bearing 88. The side wall 64 of rotor 16 includes a groove 98 that receives a retaining ring 100 for retaining bearing 90.
An expansion chamber 102 is formed within housing 14 between an inner surface of the side wall 24 (
Desiccant 18 fills the interior chamber 84 of rotor 16 such that air entering openings 86 must flow through desiccant 18 to reach outlet 82. Desiccant 18 is porous so that air may flow through it. Desiccant 18 has a cylindrical section 106 that abuts side wall 64 and a conical section 108 that abuts side wall 68 of desiccant cartridge 66. An outer surface 110 of desiccant 18 abuts side walls 64 and 68. Desiccant 18 is shaped to conform to the surfaces that define interior chamber 84, and as such the outer surface 110 of the conical section 108 of desiccant 18 is sloped from openings 86 to outlet 82. The cross-sectional diameter of the conical section 108 of desiccant 18 tapers from openings 86 to outlet 82. Desiccant 18 adsorbs water contained within air that flows through the desiccant 18 from openings 86 to outlet 82. Desiccant 18 may be in any suitable form including a monolith preformed in the shape of a cone or a plurality of beads. If desiccant 18 includes a plurality of beads, preferably the beads are placed in a polyester sack (not shown) in order to prevent them from escaping through openings 86. Desiccant 18 may be made from any suitable material including, but not limited to, zeolite. When desiccant 18 needs to be replaced, cap 22 (
In operation, air dryer 10 receives compressed air containing water and other contaminants from air compressor 12. The compressed air enters the air dryer 10 through air inlet 44. As the air enters air dryer 10 it expands within expansion chamber 102. As the air expands, its pressure and temperature are reduced. Water within the air condenses as the air temperature and pressure are reduced. The condensed water accumulates on the interior surface of side wall 24 and runs to drain 48. Because the air is immediately cooled after it enters air dryer 10, the compressed air exiting air compressor 12 does not need to be routed through a long cooling line or hose before entering air dryer 10. This permits the hose (not shown) connecting air compressor 12 and air dryer 10 to be relatively short. The outer surface of housing 14 may include cooling fins (not shown) to cool the housing 14 and air within the housing 14 in order to facilitate condensation of the water within the air. Further, the outer surface of rotor 16 may include vanes (not shown) that help to accelerate the air entering air inlet 44 and spin out larger particle contaminants, such as oil and water droplets, that then accumulate on the interior surface of side wall 24 and run to drain 48.
After the air enters expansion chamber 102 it flows through coalescing filter 104, which collects and removes oil aerosols from the compressed air. The air then flows through the openings 86 in rotor 16 and through the desiccant 18. As the air flows through desiccant 18, the desiccant 18 dries the air by adsorbing water contained within the air. The air exits air dryer 10 through air outlet 46 (
Referring to
From the foregoing it will be seen that this invention is one well adapted to attain all ends and objectives herein-above set forth, together with the other advantages which are obvious and which are inherent to the invention.
Since many possible embodiments may be made of the invention without departing from the scope thereof, it is to be understood that all matters herein set forth or shown in the accompanying drawings are to be interpreted as illustrative, and not in a limiting sense.
While specific embodiments have been shown and discussed, various modifications may of course be made, and the invention is not limited to the specific forms or arrangement of parts and steps described herein, except insofar as such limitations are included in the following claims. Further, it will be understood that certain features and subcombinations are of utility and may be employed without reference to other features and subcombinations. This is contemplated by and is within the scope of the claims.
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
1393335, | |||
3784092, | |||
3876400, | |||
3945464, | Jan 13 1973 | Hokuetsu Kogyo Co. Ltd. | Oil-injection-type rotary compressor having a centrifugal water separator |
4097248, | May 15 1974 | FRANTZ, VIRGIL L ; FRANTZ, LANIER; ROANOKE COLLEGE, A NON-PROFIT, HIGHER EDUCATIONAL INSTITUTION OF | Method for decontaminating compressed gas |
4253315, | Feb 16 1979 | Arrow Pneumatics, Inc. | Refrigerated air dryer |
4361425, | Jun 14 1980 | Nippon Air Brake Co., Ltd. | Dehumidifier |
4474661, | Jun 27 1983 | PARKER HANNIFAN CUSTOMER SUPPORT INC | Filter dryer |
4478619, | May 02 1983 | Compressed air filtering apparatus | |
4723970, | Feb 15 1985 | TLV Co., Ltd. | Gas-water separator |
4806134, | Dec 22 1986 | Garphyttan Haldex AB | Method and system for controlling a compressed air flow in an air drier |
5104520, | Jun 25 1990 | The United States of America as represented by the United States | Apparatus and method for separating constituents |
5104541, | May 10 1990 | DANIEL, WILLIAM | Oil-water separator |
5120694, | Jul 28 1989 | UOP | Method of coating aluminum substrates with solid adsorbent |
5260242, | Mar 05 1992 | UOP | Method of coating aluminum substrates with solid adsorbent |
5401706, | Jan 06 1993 | Semco Incorporated | Desiccant-coated substrate and method of manufacture |
5477014, | Jul 28 1989 | UOP | Muffler device for internal combustion engines |
5494586, | Jun 20 1990 | Toyota Jidosha Kabushiki Kaisha | Oil-water separation apparatus |
5738710, | Aug 08 1995 | Morikawa Industries Corporation | Control method and apparatus for material adsorbed on adsorbent, and solvent recovering method and apparatus using same |
5762810, | Nov 22 1996 | Coalescing oil/water separator | |
6056804, | Jun 30 1997 | Air Products and Chemicals, Inc | High frequency rotary pressure swing adsorption apparatus |
6406523, | Jun 09 2000 | AIR PRODUCTS AND CHEMICALS INC | Rotary pressure swing adsorption apparatus |
6547003, | Jun 14 2000 | GE OIL & GAS ESP, INC | Downhole rotary water separation system |
6581394, | Dec 07 1999 | Jacob, Bletnitsky | Air-based refrigeration system |
6764529, | Jul 01 2002 | Bendix Commercial Vehicle Systems LLC | Membrane gas dehydrating apparatus for gas controlled and powered systems |
6835236, | Jan 25 2002 | Parker Intangibles LLC | Molded core filter drier with filter media molded to core |
6866950, | Dec 08 2000 | AIR PRODUCTS AND CHEMICALS INC | Methods and apparatuses for gas separation by pressure swing adsorption with partial gas product feed to fuel cell power source |
7326277, | Apr 14 2004 | UOP LLC | Brake air drying using low pressure desiccant wheel |
7753069, | Aug 25 2003 | Bendix Commercial Vehicle Systems LLC | Drain valve |
8079805, | Jun 25 2008 | Dresser-Rand Company | Rotary separator and shaft coupler for compressors |
8324523, | Jul 16 2001 | Foret Plasma Labs, LLC | Plasma whirl reactor apparatus and methods of use |
20060254420, | |||
20080092738, | |||
20120125198, | |||
20130052053, | |||
SU1415006, | |||
SU1571366, |
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